FIELD OF THE INVENTION
[0001] The present invention is directed to an improved processor and method for use in
thermally developing photosensitive printing elements.
BACKGROUND OF THE INVENTION
[0002] Flexography is a method of printing that is commonly used for high-volume runs. Flexography
is employed for printing on a variety of substrates such as paper, paperboard stock,
corrugated board, films, foils and laminates. Newspapers and grocery bags are prominent
examples. Coarse surfaces and stretch films can be economically printed only by means
of flexography. Flexographic printing plates are relief plates with image elements
raised above open areas. Such plates offer a number of advantages to the printer,
based chiefly on their durability and the ease with which they can be made.
[0003] Although photopolymer printing elements are typically used in "flat" sheet form,
there are particular applications and advantages to using the printing element in
a continuous cylindrical form, as a continuous in-the-round (CITR) photopolymer sleeve.
CITR photopolymer sleeves add the benefits of digital imaging, accurate registration,
fast mounting, and no plate lift to the flexographic printing process. CITR sleeves
have applications in the flexographic printing of continuous designs such as in wallpaper,
decoration and gift-wrapping paper, and other continuous designs such as tablecloths,
etc. CITR sleeves enable flexographic printing to be more competitive with gravure
and offset on print quality.
[0004] A typical flexographic printing plate as delivered by its manufacturer is a multilayered
article made of, in order, a backing or support layer, one or more unexposed photocurable
layers, a protective layer, slip film and/or laser ablatable layer, and a cover sheet.
A typical CITR photopolymer sleeve generally comprises a sleeve carrier (support layer)
and at least one unexposed photocurable layer on top of the support layer.
[0005] A flexographic printing element is produced from a photocurable printing blank by
imaging the photocurable printing blank to produce a relief image on the surface of
the printing element. This is generally accomplished by selectively exposing the photocurable
material to actinic radiation, which exposure acts to harden or crosslink the photocurable
material in the irradiated areas. The photocurable printing blank contains one or
more layers of an uncured photocurable material on a suitable backing layer. The photocurable
printing blank can be in the form of a continuous (seamless) sleeve or as a flat,
planar plate that is mounted on a carrier sleeve.
[0006] The photopolymers used generally contain binders, monomers, photoinitiators, and
other performance additives. Various photopolymers such as those based on polystyrene-isoprene-styrene,
polystyrene-butadiene-styrene, polyurethanes and/or thiolenes as binders are useful.
Preferable binders are polystyrene-isoprene-styrene, and polystyrene-butadiene-styrene,
especially block co-polymers of the foregoing.
[0007] The printing element is selectively exposed to actinic radiation in one of three
related ways. In the first alternative, a photographic negative with transparent areas
and substantially opaque areas is used to selectively block the transmission of actinic
radiation to the printing plate element. In the second alternative, the photopolymer
layer is coated with an actinic radiation (substantially) opaque layer that is sensitive
to laser ablation. A laser is then used to ablate selected areas of the actinic radiation
opaque layer creating an
in situ negative. This technique is well-known in the art, and is described for example in
U.S. Patent Nos. 5,262,275 and
6,238,837 to Fan, and in
U.S. Patent No. 5,925,500 to Yang et al., the subject matter of each of which is herein incorporated by reference in its entirety.
In the third alternative, a focused beam of actinic radiation is used to selectively
expose the photopolymer. Any of these alternative methods is acceptable, with the
criteria being the ability to selectively expose the photopolymer to actinic radiation
thereby selectively curing portions of the photopolymer.
[0008] Next, the photopolymer layer of the printing element is developed to remove uncured
(i.e., non-crosslinked) portions of the photopolymer, without disturbing the cured
portions of the photopolymer layer, to produce the relief image. The development step
has traditionally been accomplished in a variety of ways, including water washing,
solvent washing, and thermal development (blotting). Thermal development has the advantage
of not requiring an additional drying step after development and thus provides the
ability to go more quickly from plate to press.
[0009] Processes have been developed whereby photopolymer printing plates are prepared using
heat and the differential melting temperature between cured and uncured photopolymer
is used to develop the latent image. The basic parameters of this process are known,
as described in
U.S. patent Nos. 5,279,697,
5,175,072 and
3,264,103, in published U.S. patent publication Nos.
US 2003/0180655, and
U.S. 2003/0211423, and in
WO 01/88615,
WO 01/18604, and
EP 1239329. These processes allow for the elimination of development solvents and the lengthy
plate drying times needed to remove the solvent. The speed and efficiency of these
processes allow for their use in the manufacture of flexographic pates for printing
newspapers and other publications where quick turnaround times and high productivity
are important.
[0010] In order for the printing plate to be thermally developable, the composition of the
photopolymer must be such that there exists a substantial difference in the melt temperature
between the cured and uncured polymer. It is precisely this difference that allows
the creation of an image in the photopolymer when heated. The uncured photopolymer
(i.e., the portions of the photopolymer not contacted with actinic radiation) melts
and/or substantially softens while the cured photopolymer remains solid and intact
at the temperature chosen. Thus, the difference in melt temperature allows the uncured
photopolymer to be selectively removed thereby creating the desired image.
[0011] Thereafter, uncured photopolymer can be softened and/or melted and removed. In most
instances, the heated printing element is contacted with an absorbent material that
absorbs or otherwise removes the softened and/or melted uncured photopolymer. This
removal process is generally referred to as "blotting".
[0012] Upon completion of the blotting process, the printing plate element may be post-exposed
to further actinic radiation and/or subjected to detackification, cooled and is then
ready to use.
[0013] However, when thin (e.g., (0.1143cm (0.045 inch) or less) printing plates are processed
in the thermal processor, the plates tend to wrinkle which causes problems in print
quality. In attempting to solve this problem, the inventors of the present invention
have studied various processor speeds and processing conditions. The inventors herein
have discovered that when a resilient compressible backing sheet is place under the
photopolymer plate when being processed with heat, wrinkling of the plate is reduced
or eliminated.
[0014] EP 2112556 discloses a method and apparatus for forming a printing form from a photosensitive
element to form a relief pattern.
US 2006/0081142 discloses a system for forming a relief image on a photosensitive printing element
comprising housing a conveyer and a heatable roller.
US2006/0210928 discloses a method of manufacturing a photosensitive printing element that minimizes
relief variation and improves image fidelity.
US 2004/0237818 discloses novel printing surfaces with low resilience.
SUMMARY OF THE INVENTION
[0015] The present invention comprises an improved thermal development apparatus and a method
of using the improved thermal development apparatus to remove uncured photopolymer
from the imaged surface of a flexographic printing element. The apparatus and method
can eliminate or minimize wrinkling of the flexographic plate upon thermal development.
[0016] The present invention comprises an apparatus according to claim 1.
[0017] In a preferred embodiment, the apparatus comprises:
- (i) means to support, and preferably rotate, a flexographic printing element;
- (ii) optionally, but preferably means for exposing an imaged surface of the flexographic
printing element, said means comprising one or more sources of actinic radiation;
and
- (iii) means for thermally developing an imaged and exposed surface of the flexographic
printing select, said thermally developing means comprising;
- a) means for softening or melting non-crosslinked photopolymer on the imaged and exposed
surface of the flexographic printing element;
- b) at least one roll that is contactable with the imaged and exposed surface of the
flexographic printing element and capable of moving over at least a portion of the
imaged and exposed surface of the flexographic printing element to remove the softened
or melted non-crosslinked photopolymer on the imaged and exposed surface of the flexographic
printing element; and
- c) means for maintaining contact between the at least one roll and the imaged and
exposed surface of the flexographic printing element;
wherein a resilient compressible layer is located between the support means and the
flexographic printing element in a manner such that the resilient compressible layer
is not permanently attached to either the support means or the flexographic printing
element.
[0018] Said layer of resilient compressible material has a resilience from 10 to 60 and
a compressibility from 103 kPa to 172 kPa (15 psi to 25 psi) at 25 % compression
[0019] The roll(s) preferably have a blotting material positioned around at least the portion
of the roll(s) in contact with the imaged surface of the flexographic printing element.
In an alternate embodiment, a doctor blade can be positioned adjacent to the roll(s)
to remove non-crosslinked photopolymer from the roll(s) after it has been removed
from the imaged surface of the flexographic printing element. If desired, two rolls
may be used, such that the two rolls are self-centering against the imaged surface
of the cylindrical printing element. In another aspect of the invention, one or more
additional rolls may be positioned in an opposing position on the opposite side of
the cylindrical printing element to increase resin removal from the imaged surface
of the flexographic printing element and to increase imaging speed.
[0020] In one embodiment, the means for softening or melting non-crosslinked photopolymer
on the imaged and exposed surface of the flexographic printing element comprises heating
the at least one roll that contactable with the imaged surface of the flexographic
printing element. In another embodiment of the invention, the means for softening
or melting non-crosslinked photopolymer on the imaged and exposed surface of the flexographic
printing element comprises positioning a heater adjacent to the imaged and exposed
surface of the flexographic printing element. The heated roll and external heater
can also be used together.
[0021] The invention also comprises a method according to claim 5.
[0022] Also described herein is a method of using the thermal development apparatus of the
invention comprising the steps of:
- a) supporting, and preferably rotating, a flexographic printing element;
- b) optionally, but preferably, exposing an imaged surface of the flexographic printing
element to one or more sources of actinic radiation;
- c) melting or softening non-crosslinked polymer on the imaged and exposed surface
of the flexographic printing element;
- d) causing contact between the imaged and exposed surface of the flexographic printing
element and at least one roll; and
- e) rotating the at least one roll against at least a portion of the imaged and exposed
surface of the flexographic printing element to remove non-crosslinked photopolymer
from the imaged and exposed surface of the flexographic printing element;
wherein a resilient and compressible layer is removably placed between the support
and the flexographic printing element before step (d), and said layer of resilient
compressible material has a resilience from 10 to 60 and a compressibility from 103
kPa to 172 kPa (15 psi to 25 psi) at 25 % compression.
BRIEF DESCRIPTION OF THE DRAWINGS
[0023] Figure 1 depicts one embodiment of the thermal development apparatus of the instant
invention.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS OF THE INVENTION
[0024] The present invention relates to an improved thermal development apparatus and a
method of using the apparatus to remove non-crosslinked polymer from an imaged and
exposed surface of a relief image printing element during a process for manufacturing
the relief image printing element.
[0025] It is also referred to an improved combined exposing and developing apparatus and
a method of using the apparatus to expose the relief image printing plate to actinic
radiation to selectively cure, i.e. crosslink, portions of the photopolymer layer
revealed during the imaging step, and thermally developing the relief image printing
plate to remove non-crosslinked polymer from the imaged and exposed surface of the
relief printing element during a process for manufacturing the relief image printing
element. Although the printing plate must be imaged and exposed prior to development,
the imaging and exposure need not be carried out in the apparatus of the invention,
but instead can be carried out separately prior to entering the apparatus of this
invention. That being said, it is advantageous to carry out these processes together
in one combined apparatus.
[0026] It is further referred to an improved combined exposing, developing, and post exposure/detack
apparatus and a method of using the combined apparatus during a process for manufacturing
relief image printing plates.
[0027] A flexographic printing element is produced from a photocurable printing blank by
imaging and exposing the photocurable printing blank to produce a relief image on
the surface of the printing element. This is generally accomplished by selectively
exposing the photocurable material to actinic radiation, which exposure acts to harden
or crosslink the photocurable material in the irradiated areas.
[0028] The photocurable printing blank contains one or more layers of an uncured photocurable
material on a suitable backing layer. Printing elements of various sizes can be processed
in the novel apparatus of the invention, limited only by the length of the cylinder
or conveyor on which the printing element is supported and the length of the one or
more carriages traversing the means for exposing the printing element and/or the means
for thermally developing the printing element across the length of the printing cylinder.
These features will be described in greater detail below.
[0029] The printing element is imaged and selectively exposed to actinic radiation in one
of three related ways. In the first alternative, a photographic negative with transparent
areas and substantially opaque areas is used to selectively block the transmission
of actinic radiation to the printing plate element. In the second alternative, the
photopolymer layer is coated with an actinic radiation (substantially) opaque layer
that is sensitive to laser ablation. A laser is then used to ablate selected areas
of the actinic radiation opaque layer creating an
in situ negative. In the third alternative, a focused beam of actinic radiation is used to
selectively expose the photopolymer. Any of these alternative methods is acceptable,
with the criteria being the ability to image and selectively expose the photopolymer
to actinic radiation thereby selectively curing portions of the photopolymer.
[0030] In a preferred embodiment, the printing element comprises a photopolymer layer that
is coated with an actinic radiation (substantially) opaque layer, which typically
comprises carbon black, and which is sensitive to laser ablation. A laser, which is
preferably an infrared laser, is then used to ablate selected areas of the actinic
radiation opaque layer creating an
in situ negative. This technique is well-know in the art, and is described for example in
U.S. Patent Nos. 5,262,275 and
6,238,837 to Fan, and in
U.S. Patent No. 5,925,500 to Yang et al.
[0031] The selected areas of the photopolymer layer revealed during laser ablation are then
exposed to actinic radiation to crosslink and cure the portions of the photopolymer
layer that are not covered by the
in situ negative. The type of radiation used is dependent on the type of photoinitiator in
the photopolymerizable layer. The radiation-opaque material in the infrared sensitive
layer which remains on top of the photopolymerizable layer prevents the material beneath
from being exposed to the radiation and thus those areas covered by the radiation-opaque
material do not polymerize. The areas not covered by the radiation-opaque material
are exposed to actinic radiation and polymerize and thus crosslink and cure. Any conventional
sources of actinic radiation can be used for this exposure step. Examples of suitable
UV sources include carbon arcs, mercury-vapor arcs, fluorescent lamps, electron flash
units, electron beam units and photographic flood lamps.
[0032] Next, the photopolymer layer of the printing element is developed to remove uncured
(i.e., non-crosslinked) portions of the photopolymer, without disturbing the cured
portions of the photopolymer layer, to produce the relief image.
[0033] The thermal developing apparatus of the invention can be combined with the exposure
device so that the printing element may be exposed and developed in the same apparatus
without the need to remove the printing element from the exposing apparatus to place
it into the developing apparatus. In another embodiment, the apparatus further comprises
a means for post exposure/detack in the same apparatus. However, this invention works
equally well with a separate thermal development with having imaging separately performed
before development and post exposure/detack performed separately after development.
[0034] The apparatus of the invention typically comprises:
- (i) means to support, and preferably rotate, a flexographic printing element;
- (ii) optionally, but preferably, means for exposing an imaged surface of the flexographic
printing element to actinic radiation; and
- (iii) means for thermally developing said imaged and exposed surface of the flexographic
printing element, wherein the thermally developing means comprises:
- a) means for softening or melting non-crosslinked photopolymer on the imaged and exposed
surface of the flexographic printing element;
- b) at least one roll that is contactable with the imaged surface of the flexographic
printing element and capable of moving over at least a portion of the imaged surface
of the flexographic printing element to remove the softened or melted non-crosslinked
photopolymer on the imaged and exposed surface of the flexographic printing element;
and
- c) means for maintaining contact between the at least one roll and the imaged and
exposed surface of the flexographic printing element;
wherein a resilient compressible layer is located between the support means and the
flexographic printing element in a manner such that the resilient compressible layer
is not permanently attached to the support means or the flexographic printing element.
[0035] Said layer of resilient compressible material has a resilience from 10 to 60 and
a compressibility from 103 kPa to 172 kPa (15 psi to 25 psi) at 25 % compression.
[0036] As depicted in Figure 1, the present invention is directed to a system 10 for forming
a relief image on a photosensitive printing element 22. The system 10 of the invention
comprises an enclosure 12 for housing the elements of the thermal plate processing
system 10.
[0037] The plate processor 10 of the invention accepts a previously formed and imagewise
actinic radiation exposed flexible photosensitive printing element 22 with the resilient
compressible layer 14 thereunder. The photosensitive printing element 22 has a base
layer, an adjacent layer of a radiation hardenable elastomer material (curable layer),
and optionally, but preferably, an infrared sensitive layer which is used to form
an
in situ mask on the curable layer using laser radiation prior to exposure to actinic radiation.
Suitable photosensitive printing elements usable in the invention are described in
U.S. Patent No, 5,175,072 to Martens,
U.S. Patent Nos. 5,262,275 and
6,238,837 to Fan, and
U.S. Patent Nos. 5,925,500 and
6,605,410 to Yang et al.
[0038] A portion of the radiation curable layer is preferably cured by actinic radiation
through the lower surface of the base to form a cured "floor." Next, the film is imagewise
exposed from the opposite surface to cure the desired portions of the plate, preferably
through the
in situ mask. The remaining portion of the radiation curable layer after curing consists
of cured portions and uncured portions.
[0039] A conveyor 20 attached to a drive motor (not shown) is used to transport and convey
the photosensitive printing element 22 through the thermal plate processing system.
The conveyor 20 is mounted in a fixed position in the enclosure 12, and comprises
a continuous loop support means 21 supported by at least a first roller 23 and a second
roller 24. Optionally, one or more additional rollers (not shown) may be used to provide
additional support to the conveyor 20 and prevent the continuous loop 21 from sagging
from the weight of the photosensitive printing element 22. In a preferred embodiment,
the continuous loop support means 21 comprises wire mesh. In the alternative, the
support means can be a rotatable drum.
[0040] The leading edge of the photosensitive printing element 22 and that of the resilient
compressible layer 14 may be held in place against the continuous loop 21 of the conveyor
20 by suitable fastening means 16, such as a clamp and/or vacuum. If desired, a vacuum
may be provided to at least one of the first roller 23 and the second roller 24 of
the conveyor 20, and used, alone or in combination with fastening means 16, to hold
the photosensitive printing element 22 and the resilient compressible layer 14 in
place on the continuous loop 21 of the conveyor 20.
[0041] During operation, the conveyor 20 with photosensitive printing element 22 and the
resilient compressible layer 14 moves in a first direction 26 towards heatable roller
28 such that the photosensitive printing element 22 with the resilient compressible
layer 14 thereunder, passes through a gap 70 between the conveyor 20 and the heatable
roller 28 as the continuous loop 21 of conveyor 20 rotates over and around the second
roller 24. Heatable roller 28 rotates in an opposite direction 30 from the conveyor
20. Heatable roller 28 is capable of being urged towards the photosensitive printing
element 22 positioned on the conveyor 20 as the conveyor moves in first direction
26 and heatable roller 28 moves in an opposite direction 30. Preferably, the heatable
roller 28 is fixably mounted on a pivot (not shown), which allows it to be urged towards
the conveyor 20.
[0042] In a preferred embodiment, the heatable roller 28 is urged toward the photosensitive
printing element 14 on the conveyor 20 using suitable means, such as one or more pneumatic
cylinders 40. The pneumatic cylinder(s) 40 positions the heatable roller 28 at a preset
distance from the outer surface of the second roller 24 of the conveyor 20 to produce
the gap 70 through which the photosensitive printing element 22 passes as it travels
on the continuous loop 21 of the conveyor 20 around the second roller 24.
[0043] A web of absorbent material 32 is conducted over at least a portion of an outer surface
29 of the heatable roller 28. The web of absorbent material 32 is capable of absorbing
(removing) material that is liquefied or softened from the photosensitive printing
element 22 when the heatable roller 28 rotates and is heated and the web of absorbent
material 32 contacts at least a portion of the photosensitive printing element 22.
The heatable roller 28 rotates in a direction 30 opposite to the direction 26 of the
conveyor 20 so that the photosensitive printing element 22 and the web of absorbent
material 32 can be contacted with each other and then separated.
[0044] The pneumatic cylinder 40 is controlled to adjust the gap 70 depending on the thickness
of the photosensitive printing element 22 with the resilient compressible layer 14
thereunder. The pneumatic cylinder(s) 40 causes photosensitive printing element 22
and the web of absorbent material 32 to come into contact at the gap 70 between the
conveyor 20 and the heatable roller 28 as the conveyor 20 rotates in a first direction
26 and the heatable roller 28 rotates in an opposite direction 30 such that at least
a portion of the liquefied or softened material is absorbed by the web of absorbent
material 32.
[0045] Heat is provided to the heatable roller 28 by a core heater that is capable of maintaining
a skin temperature of the heatable roller 28 that will soften or liquefy at least
a portion of the photosensitive material. The temperature to which the heatable roller
28 is heated is chosen based on the composition of the photosensitive material and
is based on the melting temperature of the monomers and polymers contained within
the photosensitive material. Although the heatable roller 28 preferably comprises
an electrical core heater to provide the desired skin temperature, the use of steam,
oil, hot air, and a variety of other heating sources may also provide the desired
skin temperature.
[0046] The web of absorbent material 32 is supplied to at least the portion of the outer
surface of the heatable roller 28 from a supply roll 34 of the web of absorbent material
32. The specific type of absorbent material is not critical to the present invention.
The selection of the absorbent material 32 depends in part upon the thickness of the
photosensitive printing element 22 to be processed, the melting temperature of the
web of absorbent material 32, and the heat transfer characteristics of both the photosensitive
printing element 22 and the web of absorbent material 32.
[0047] The web of absorbent material 32 comes into face-to-face contact with the heatable
roller 28, which in the preferred embodiment is heated to and operated at a temperature
between about 120°C and about 200°C. The upper limit is determined in large part by
the melting temperature of the web of absorbent material 32. The temperature of the
heatable roller 28 must also be low enough so that when the web of absorbent material
32 is not moving and the portions of the web of absorbent material 32 contacting the
heatable roller 28 are at rest, the absorbent material 32 does not melt. Suitable
means for maintaining uniform tension in the web of absorbent material throughout
the system may be used, including for example, one or more idler rollers (not shown).
Other means for maintaining tension in the web may also be provided and would be known
to those skilled in the art.
[0048] It is also critical that the linear speed of the heatable roller 28, the web of absorbent
material 32, and the photosensitive printing element 22 be substantially the same
to avoid any shear stress on the photosensitive printing element 22, which stress
is known to cause uneven relief portion plate thickness.
[0049] In a preferred embodiment, a take-up roller 36 is provided for winding the web of
absorbent material 32 after processing through the plate processor. If present, the
take-up roller 36 is independently belt driven by a motor 38, which is preferably
a variable speed motor. The take-up roller 36 collects the web of absorbent material
32 after it has contacted the photosensitive printing element 22 and removed portions
of the photosensitive material that were liquefied or softened. The speed of the motor
38 is adjusted so as to not interfere with the selected web tension. If the motor
interferes with web tension, the resulting flexographic plate could potentially have
variable heights in the relief portions or might warp and be commercially unacceptable.
[0050] In another optional, but preferred embodiment, the system 10 may comprise heating
means 60 positioned adjacent to a point 70 where the absorbent material 32 contacts
the photosensitive printing element 22 on the conveyor 20. The heating means 60 provides
an auxiliary heat source to further soften and liquefy portions of the photosensitive
printing element 22 on the conveyor 20.
[0051] It would be apparent to one skilled in the art that the conveyor 20, including first
roller 23 and a second roller 24 as well as the heatable roller 28 are driven by suitable
means, i.e., a motor. In addition, a controller, such as a microprocessor may be used
in the system of the invention to control the operation of each of the elements in
the plate processor 10. Such controllers are well known in the art. One example of
a controller used to control the various elements in a plate processor is described
in
U.S. Patent No. 5,279,697 to Peterson et al.
[0052] The present invention is also directed to a method of forming a relief image on a
photosensitive printing element, wherein the photosensitive printing element comprises
a flexible substrate (base/layer) and at least one layer of photosensitive material
deposited on the flexible substrate using the system described above.
[0053] The method comprises the steps of (1) providing a frame or enclosure; (2) positioning
a photosensitive printing element on a support conveying means with the resilient
compressible layer between the support conveying means and the flexographic printing
element, said support conveying means comprising a continuous loop supported by at
least a first roller and a second roller (or a rotating drum), wherein the photosensitive
printing element and the resilient compressible layer are supported on the continuous
loop; (3) supplying an absorbent material to at least a portion of an outer surface
of a heatable roller that is mounted for rotation in the frame or enclosure, wherein
the absorbent material is capable of absorbing material that is liquefied or softened
from the photosensitive printing element when the heatable roller is heated and rotates
and the absorbent material contacts at least a portion of the photosensitive printing
element; (4) heating the heatable roller to a temperature sufficient to cause at least
a portion of the at least one layer of photosensitive material to soften or liquefy
when the absorbent material contacts the at least one layer photosensitive material;
and (5) causing a surface of the at least one layer of photosensitive material and
the absorbent material to come into contact at a point between the conveying means
and the heatable roller such that at least a portion of the liquefied or softened
material is absorbed by the absorbent material.
[0054] Preferably, the photosensitive printing element is processed through the steps of
the process several times so that most, if not all of the uncured photosensitive material
can be removed from the surface of the photosensitive printing element to obtain the
relief image.
[0055] The resilient compressible layer should be removably located between the support
means and the flexographic printing element such that it is not permanently attached
to either the support means or the flexographic printing element. The resilient compressible
layer serves three primary functions. First it provides a resilient cushion below
the flexographic printing element which can absorb any variation in pressure applied
by the hot roll when it contacts the surface of the flexographic printing element
due to variations in thickness of the flexographic printing element across its surface.
This ability to absorb and distribute excess pressure is believed to be of primary
importance in eliminating or reducing wrinkles in the flexographic printing element.
Secondly, the resilient compressible layer allows for a small amount of movement or
slippage by the flexographic printing as the hot roll passes over its surface. Thirdly,
the resilient compressible layer can be matched with the flexographic printing element
such that the thickness of the two together adds to a specified thickness. To accomplish
these objectives the resilient compressible layer has a resiliency of from about 10
to 60 as measured by ASTM D2632. The resilient compressible layer should also have
a compressibility of about 103kPa to 172 kPa (15 psi to 25 psi) at 25% compression.
[0056] The resilient compressible layer can be formed using a variety of substances which
will meet the resilience, compressibility, and preferably static surface coefficient
of friction necessary. Suitable materials including photopolymers, polymeric materials,
compressible foams, and natural or synthetic rubber. The thickness of the resilient
compressible layer is generally from about 0.051cm to 0.304cm (0.02 in to 0.120 in),
preferably 0.102cm to 0.229cm (0.04 in to 0.09 in), most preferably 0.102cm to 0.152cm
(0.04 in to 0.06 in). The thickness of the resilient compressible layer can be matched
to the flexographic printing element such that the combined thickness of the two is
a predetermined amount thereby minimizing adjustments necessary to the apparatus.
[0057] The flexographic printing element and the resilient compressible layer are typically
held together on the support means with a clamp which may be assisted by suction (vacuum)
force. As noted the flexographic printing element is on top with its photopolymer
layer facing outward and its backing sheet resting on the upper surface of the resilient
compressible layer. The resilient compressible layer is located between the flexographic
printing element and the support means.
1. A system (10) for forming a relief image on a photosensitive printing element (22),
wherein the photosensitive printing element (22) comprises a flexible substrate and
at least one layer of photosensitive material deposited on the flexible substrate,
the system comprising:
a frame (12);
a means (21) for supporting and conveying the photosensitive printing element (21),
wherein the photosensitive printing element (22) is positioned on the means for supporting
and conveying with a layer of resilient compressible material (14) removably positioned
between the photosensitive printing element (22) and the means for supporting and
conveying (21);
a heatable roller (28) capable of being urged towards the photosensitive printing
element (22) positioned on the means for supporting and conveying (21), wherein an
absorbent material (32) is conducted over at least a portion of an outer surface of
the heatable roller (28), and wherein the absorbent material (32) is capable of absorbing
material that is liquefied or softened from the photosensitive printing element (22)
when the heatable roller (28) is heated and rotates and the absorbent material (32)
contacts at least a portion of the photosensitive printing element (22); and
means for causing the photosensitive element (22) and the absorbent printing material
(32) to come into contact at a point between the means for supporting and conveying
(21) and the heatable roller (28) such that at least a portion of the liquefied or
softened material is absorbed by the absorbent material (32),
wherein the layer of resilient compressible material (14) has a resilience from 10
to 60 and a compressibility from 103kPa to 172 kPa (15 psi to 25 psi) at 25% compression.
2. The system (10) according to claim 1, further comprising delivery means (34) for supplying
the absorbent material (32) to at least the portion of the outer surface of the heatable
roller (28).
3. The system (10) according to claim 1, further comprising heating means (60) for applying
heat to the photosensitive printing element (22) on the means for supporting and conveying
(21), wherein said heating means (60) are positioned adjacent to a point where the
absorbent material (32) contacts the photosensitive printing element (22) on the means
for supporting and conveying (21).
4. The system (10) according to claim 1 wherein the means for supporting and conveying
(21) is selected from the group consisting a continuous conveyor and a rotating drum.
5. A method of forming a relief image on a photosensitive printing element (22), wherein
the photosensitive printing element (22) comprises a flexible substrate and at least
one layer of photosensitive material deposited on the flexible substrate, the method
comprising the steps of:
providing a frame (12);
positioning a photosensitive printing element (22) on a supporting and conveying means
(21) with a layer of resilient compressible material (14) removably positioned between
the photosensitive printing element (22) and the supporting and conveying means (21),
said supporting and conveying means (21) comprising a continuous loop or a rotating
drum;
supplying an absorbent material (32) to at least a portion of an outer surface of
a heatable roller (28), said heatable roller (28) being mounted for rotation in the
frame (12), wherein the absorbent material (32) is capable of absorbing material that
is liquefied or softened from the photosensitive printing element (22) when the heatable
roller (28) is heated and the absorbent material (32) contacts at least a portion
of the photosensitive printing element (22);
heating the heatable roller (28) to a temperature sufficient to cause at least a portion
of the photosensitive printing element (22) to soften or liquefy when the absorbent
material (32) contacts the at least one layer photosensitive material; and
causing the photosensitive printing element (22) and the absorbent material (32) to
come into contact at a point between the means for supporting and conveying (21) and
the heatable roller (28) such that at least a portion of the liquefied or softened
material is absorbed by the absorbent material, wherein the layer of resilient compressible
material (14) has a resilience from 10 to 60 and a compressibility from 103kPa to
172 kPa (15 psi to 25 psi) at 25% compression.
6. The method according to claim 5, further comprising the step of applying heat to the
photosensitive printing element (22) on the means for supporting and conveying (21)
by positioning a heater adjacent to a point where the absorbent material contacts
the photosensitive printing element (22) on the means for supporting and conveying
(21).
1. System (10) zum Bilden eines Reliefbilds auf einem lichtempfindlichen Druckelement
(22), wobei das lichtempfindliche Druckelement (22) ein flexibles Substrat umfasst
und mindestens eine Schicht eines lichtempfindlichen Materials auf dem flexiblen Substrat
abgelagert ist, wobei das System Folgendes umfasst:
ein Gestell (12);
ein Mittel (21) zum Tragen und Befördern des lichtempfindlichen Druckelements (21),
wobei das lichtempfindliche Druckelement (22) auf dem Mittel zum Tragen und Befördern
positioniert wird, wobei eine Schicht eines elastischen verdichtbaren Materials (14)
entfernbar zwischen dem lichtempfindlichen Druckelement (22) und dem Mittel (21) zum
Tragen und Befördern positioniert wird;
eine beheizbare Walze (28), die zu dem lichtempfindlichen Druckelement (22), das auf
dem Mittel (21) zum Tragen und Befördern positioniert ist, hin getrieben werden kann,
wobei ein absorptionsfähiges Material (32) über mindestens einen Teil einer Außenfläche
der beheizbaren Walze (28) geleitet wird und wobei das absorptionsfähige Material
(32) Material absorbieren kann, das aus dem lichtempfindlichen Druckelement (22) verflüssigt
oder erweicht wird, wenn die beheizbare Walze (28) beheizt wird und sich dreht und
das absorptionsfähige Material (32) mindestens einen Teil des lichtempfindlichen Druckelements
(22) berührt; und
Mittel zum Bewirken, dass das lichtempfindliche Element (22) und das absorptionsfähige
Druckmaterial (32) an einem Punkt zwischen dem Mittel (21) zum Tragen und Befördern
und der beheizbaren Walze (28) in Kontakt kommen, so dass mindestens ein Teil des
verflüssigten oder erweichten Materials von dem absorptionsfähigen Material (32) absorbiert
wird,
wobei die Schicht des elastischen verdichtbaren Materials (14) eine Elastizität von
10 bis 60 und eine Verdichtbarkeit von 103 kPa bis 172 kPa (15 psi bis 25 psi) bei
einer Verdichtung von 25 % hat.
2. System (10) nach Anspruch 1, das weiterhin ein Abgabemittel (34) zum Zuführen des
absorptionsfähigen Materials (32) zu mindestens dem Teil der Außenfläche der beheizbaren
Walze (28) umfasst.
3. System (10) nach Anspruch 1, das weiterhin ein Heizmittel (60) zum Anwenden von Wärme
auf das lichtempfindliche Druckelement (22) auf dem Mittel (21) zum Tragen und Befördern
umfasst, wobei das Heizmittel (60) neben einem Punkt positioniert ist, an dem das
absorptionsfähige Material (32) das lichtempfindliche Druckelement (22) auf dem Mittel
(21) zum Tragen und Befördern berührt.
4. System (10) nach Anspruch 1, wobei das Mittel (21) zum Tragen und Befördern aus der
Gruppe bestehend aus einem Stetigförderer und einer rotierenden Trommel ausgewählt
ist.
5. Verfahren zum Bilden eines Reliefbilds auf einem lichtempfindlichen Druckelement (22),
wobei das lichtempfindliche Druckelement (22) ein flexibles Substrat umfasst und mindestens
eine Schicht eines lichtempfindlichen Materials auf dem flexiblen Substrat abgelagert
ist, wobei das Verfahren die folgenden Schritte umfasst:
Bereitstellen eines Gestells (12);
Positionieren eines lichtempfindlichen Druckelements (22) auf einem Trage- und Beförderungsmittel
(21), wobei eine Schicht eines elastischen verdichtbaren Materials (14) entfernbar
zwischen dem lichtempfindlichen Druckelement (22) und dem Trage- und Beförderungsmittel
(21) positioniert wird, wobei das Trage- und Beförderungsmittel (21) ein endloses
Band oder eine rotierende Trommel umfasst;
Zuführen eines absorptionsfähigen Materials (32) zu mindestens einem Teil einer Außenfläche
einer beheizbaren Walze (28), wobei die beheizbare Walze (28) zur Drehung in dem Gestell
(12) montiert ist, wobei das absorptionsfähige Material (32) Material absorbieren
kann, das aus dem lichtempfindlichen Druckelement (22) verflüssigt oder erweicht wird,
wenn die beheizbare Walze (28) beheizt wird und das absorptionsfähige Material (32)
mindestens einen Teil des lichtempfindlichen Druckelements (22) berührt;
Beheizen der beheizbaren Walze (28) auf eine Temperatur, die ausreicht, um zu bewirken,
dass mindestens ein Teil des lichtempfindlichen Druckelements (22) sich erweicht oder
verflüssigt, wenn das absorptionsfähige Material (32) die mindestens eine Schicht
des lichtempfindlichen Materials berührt; und
Bewirken, dass das lichtempfindliche Element (22) und das absorptionsfähige Druckmaterial
(32) an einem Punkt zwischen dem Mittel (21) zum Tragen und Befördern und der beheizbaren
Walze (28) in Kontakt kommen, so dass mindestens ein Teil des verflüssigten oder erweichten
Materials von dem absorptionsfähigen Material absorbiert wird, wobei die Schicht des
elastischen verdichtbaren Materials (14) eine Elastizität von 10 bis 60 und eine Verdichtbarkeit
von 103 kPa bis 172 kPa (15 psi bis 25 psi) bei einer Verdichtung von 25 % hat.
6. Verfahren nach Anspruch 5, das weiterhin den Schritt des Anwendens von Wärme auf das
lichtempfindliche Druckelement (22) auf dem Mittel (21) zum Tragen und Befördern umfasst,
indem eine Heizvorrichtung neben einem Punkt positioniert wird, an dem das absorptionsfähige
Material das lichtempfindliche Druckelement (22) auf dem Mittel (21) zum Tragen und
Befördern berührt.
1. Un système (10) pour former une image en relief sur un élément d'impression photosensible
(22), dans lequel l'élément d'impression photosensible (22) comprend un substrat flexible
et au moins une couche de matériau photosensible déposée sur le substrat flexible,
le système comprenant :
un cadre (12) ;
un moyen (21) de support et de transport de l'élément d'impression photosensible (21),
dans lequel l'élément d'impression photosensible (22) est positionné sur le moyen
de support et de transport avec une couche de matériau compressible élastique (14)
positionnée de manière amovible entre l'élément d'impression photosensible (22) et
le moyen de support et de transport (21) ;
un cylindre chauffant (28) pouvant être poussé en direction de l'élément d'impression
photosensible (22) positionné sur le moyen de support et de transport (21), dans lequel
un matériau absorbant (32) est conduit sur au moins une partie d'une surface extérieure
du cylindre chauffant (28), et dans lequel le matériau absorbant (32) est capable
d'absorber le matériau qui est liquéfié ou ramolli présent sur l'élément d'impression
photosensible (22) lorsque le cylindre chauffant (28) est chauffé et est en rotation
et que le matériau absorbant (32) est en contact avec au moins une partie de l'élément
d'impression photosensible (22) ; et
un moyen permettant que l'élément d'impression photosensible (22) et le matériau d'impression
absorbant (32) entrent en contact à un point situé entre le moyen de support et de
transport (21) et le cylindre chauffant (28) de telle sorte qu'au moins une partie
du matériau liquéfié ou ramolli est absorbée par le matériau absorbant (32),
dans lequel la couche de matériau compressible élastique (32) a une élasticité comprise
entre 10 et 60 et une compressibilité comprise entre 103 kPa et 172 kPa (15 psi et
25 psi) à une compression de 25%.
2. Le système (10) selon la revendication 1, comprenant en outre un moyen de distribution
(34) pour fournir le matériau absorbant (32) à au moins la partie de la surface extérieure
du cylindre chauffant (28).
3. Le système (10) selon la revendication 1, comprenant en outre un moyen de chauffage
(60) pour appliquer une chaleur à l'élément d'impression photosensible (22) sur le
moyen de support et de transport (21), dans lequel ledit moyen de chauffage (60) est
positionné adjacent à un point où le matériau absorbant (32) entre en contact avec
l'élément d'impression photosensible (22) sur le moyen de support et de transport
(21).
4. Le système (10) selon la revendication 1 dans lequel le moyen de support et de transport
(21) est sélectionné dans le groupe constitué par un convoyeur à vis sans fin et un
tambour rotatif.
5. Un procédé de formation d'une image en relief sur un élément d'impression photosensible
(22), dans lequel l'élément d'impression photosensible (22) comprend un substrat flexible
et au moins une couche de matériau photosensible déposée sur le substrat flexible,
le procédé comprenant les étapes consistant à :
fournir un cadre (12) ;
positionner un élément d'impression photosensible (22) sur un moyen de support et
de transport (21) avec une couche de matériau compressible élastique (32) positionnée
de manière amovible entre l'élément d'impression photosensible (22) et le moyen de
support et de transport (21), ledit moyen de support et de transport (21) comprenant
une boucle continue ou un tambour rotatif ;
fournir un matériau absorbant (32) à au moins une partie d'une surface extérieure
d'un cylindre chauffant (28), ledit cylindre chauffant (28) étant monté pour être
en rotation dans le cadre (12), dans lequel le matériau absorbant (32) est capable
d'absorber le matériau qui est liquéfié ou ramolli sur l'élément d'impression photosensible
(22) lorsque le cylindre chauffant (28) est chauffé et que le matériau absorbant (32)
est en contact avec au moins une partie de l'élément d'impression photosensible (22)
;
chauffer le cylindre chauffant (28) à une température suffisante pour permettre à
au moins une partie de l'élément d'impression photosensible (22) de se ramollir ou
de se liquéfier lorsque le matériau absorbant (32) est en contact avec la ou les couches
de matériau photosensible ; et
permettre à l'élément d'impression photosensible (22) et au matériau absorbant (32)
d'entrer en contact à un point situé entre le moyen de support et de transport (21)
et le cylindre chauffant (28) de telle sorte qu'au moins une partie du matériau liquéfié
ou ramolli est absorbée par le matériau absorbant, dans lequel la couche de matériau
compressible élastique (14) a une élasticité comprise entre 10 et 60 et une compressibilité
comprise entre 103 kPa et 172 kPa (15 psi et 25 psi) à une compression de 25%.
6. Le procédé selon la revendication 5, comprenant en outre l'étape consistant à appliquer
une chaleur à l'élément d'impression photosensible (22) sur le moyen de support et
de transport (21) en positionnant un appareil de chauffage adjacent à un point où
le matériau absorbant est en contact avec l'élément d'impression photosensible (22)
sur le moyen de support et de transport (21).